Safety of Simultaneous Scalp or Intracranial EEG during MRI: A Review
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[1] Ali R. Rezai,et al. Gelled versus nongelled phantom material for measurement of MRI-induced temperature increases with bioimplants , 2003 .
[2] Martin Bencsik,et al. Electric fields induced in the human body by time-varying magnetic field gradients in MRI: numerical calculations and correlation analysis , 2007, Physics in medicine and biology.
[3] F. D. Silva. EEG: Origin and Measurement , 2009 .
[4] S Warach,et al. Monitoring the patient's EEG during echo planar MRI. , 1993, Electroencephalography and clinical neurophysiology.
[5] J. Ebersole,et al. Cortical Substrates of Scalp EEG Epileptiform Discharges , 2007, Journal of clinical neurophysiology : official publication of the American Electroencephalographic Society.
[6] Aviva Abosch,et al. Heating induced near deep brain stimulation lead electrodes during magnetic resonance imaging with a 3 T transceive volume head coil , 2012, Physics in medicine and biology.
[7] Fritz Schick,et al. Heating of metallic implants and instruments induced by gradient switching in a 1.5-Tesla whole-body unit. , 2007, Journal of magnetic resonance imaging : JMRI.
[8] J. Gotman,et al. Scalp EEG is not a Blur: It Can See High Frequency Oscillations Although Their Generators are Small , 2013, Brain Topography.
[9] R M Weisskoff,et al. Sensory stimulation by time‐varying magnetic fields , 1990, Magnetic resonance in medicine.
[10] Nadim Joni Shah,et al. EEG acquisition in ultra-high static magnetic fields up to 9.4T , 2013, NeuroImage.
[11] N Westerhof,et al. Transesophageal cardiac pacing during magnetic resonance imaging: Feasibility and safety considerations , 1996, Magnetic resonance in medicine.
[12] Outi Sipilä,et al. Safety in simultaneous EEG-fMRI at 3 T: temperature measurements , 2015, Acta radiologica.
[13] K R Foster,et al. Health and safety implications of exposure to electromagnetic fields in the frequency range 300 Hz to 10 MHz , 2002, Bioelectromagnetics.
[14] Kawin Setsompop,et al. Design of parallel transmission pulses for simultaneous multislice with explicit control for peak power and local specific absorption rate , 2015, Magnetic resonance in medicine.
[15] W. Dewey,et al. Thermal dose determination in cancer therapy. , 1984, International journal of radiation oncology, biology, physics.
[16] J R Ives,et al. EEG-triggered echo-planar functional MRI in epilepsy , 1996, Neurology.
[17] Mark E. Ladd,et al. SAR Simulations & Safety , 2017, NeuroImage.
[18] Jianming Jin. Electromagnetic Analysis and Design in Magnetic Resonance Imaging , 1998 .
[19] K. Uğurbil,et al. Multiband accelerated spin‐echo echo planar imaging with reduced peak RF power using time‐shifted RF pulses , 2013, Magnetic resonance in medicine.
[20] O Wruhs,et al. Complications in the use of diathermy. , 1997, Burns : journal of the International Society for Burn Injuries.
[21] Azma Mareyam,et al. Feasibility of using linearly polarized rotating birdcage transmitters and close‐fitting receive arrays in MRI to reduce SAR in the vicinity of deep brain simulation implants , 2017, Magnetic resonance in medicine.
[22] S. Debener,et al. Effects of simultaneous EEG recording on MRI data quality at 1.5, 3 and 7 tesla. , 2008, International journal of psychophysiology : official journal of the International Organization of Psychophysiology.
[23] Richard Bowtell,et al. Exploring the feasibility of simultaneous electroencephalography/functional magnetic resonance imaging at 7 T. , 2008, Magnetic resonance imaging.
[24] Louis Lemieux,et al. Simultaneous intracranial EEG and fMRI of interictal epileptic discharges in humans , 2011, NeuroImage.
[25] Jean A. Tkach,et al. Evaluation of specific absorption rate as a dosimeter of MRI‐related implant heating , 2004, Journal of magnetic resonance imaging : JMRI.
[26] Ravi S. Menon,et al. A conformal transceive array for 7 T neuroimaging , 2012, Magnetic resonance in medicine.
[27] B. Thomas,et al. Clinical applications of functional MRI in epilepsy , 2008, Indian Journal of Radiology and Imaging.
[28] Maria Ida Iacono,et al. Local SAR near deep brain stimulation (DBS) electrodes at 64 and 127 MHz: A simulation study of the effect of extracranial loops , 2017, Magnetic resonance in medicine.
[29] Jorge Gonzalez-Martinez,et al. MR imaging-related heating of deep brain stimulation electrodes: in vitro study. , 2002, AJNR. American journal of neuroradiology.
[30] John S. Thornton,et al. Functional MRI with active, fully implanted, deep brain stimulation systems: Safety and experimental confounds , 2007, NeuroImage.
[31] Esra Abaci Turk,et al. Reduction of the radiofrequency heating of metallic devices using a dual‐drive birdcage coil , 2013, Magnetic resonance in medicine.
[32] Lawrence L. Wald,et al. Construction and modeling of a reconfigurable MRI coil for lowering SAR in patients with deep brain stimulation implants , 2017, NeuroImage.
[33] Jean A. Tkach,et al. Is magnetic resonance imaging safe for patients with neurostimulation systems used for deep brain stimulation? , 2005, Neurosurgery.
[34] L. Mancini,et al. The Safety of Using Body-Transmit MRI in Patients with Implanted Deep Brain Stimulation Devices , 2015, PloS one.
[35] M R Symms,et al. EEG-triggered functional MRI of interictal epileptiform activity in patients with partial seizures. , 1999, Brain : a journal of neurology.
[36] D. B. Gurung,et al. Transient Temperature Distribution in Human Males and Females Body Due to Variation in Perfusion Effect , 2014 .
[37] P. Luijten,et al. Improving peak local SAR prediction in parallel transmit using in situ S‐matrix measurements , 2017, Magnetic resonance in medicine.
[38] Trevor Coward,et al. An In-Vitro Study , 2016 .
[39] M. Dewhirst,et al. Thresholds for thermal damage to normal tissues: An update , 2011, International journal of hyperthermia : the official journal of European Society for Hyperthermic Oncology, North American Hyperthermia Group.
[40] Yigitcan Eryaman,et al. Reduction of implant RF heating through modification of transmit coil electric field , 2011, Magnetic resonance in medicine.
[41] Yasushi Miyagi,et al. Correlation between scalp-recorded electroencephalographic and electrocorticographic activities during ictal period , 2007, Seizure.
[42] T W Athey. A model of the temperature rise in the head due to magnetic resonance imaging procedures , 1989, Magnetic resonance in medicine.
[43] Rainer Goebel,et al. The Added Value of EEG-fMRI in Imaging Neuroscience , 2009 .
[44] Bradley G. Goodyear,et al. Feasibility of an intracranial EEG–fMRI protocol at 3T: Risk assessment and image quality , 2012, NeuroImage.
[45] P. Glover,et al. Interaction of MRI field gradients with the human body , 2009, Physics in medicine and biology.
[46] John A. Nyenhuis. Interactions of medical implants with the magnetic fields in MRI , 2003, Proceedings of the 25th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (IEEE Cat. No.03CH37439).
[47] R B Lufkin,et al. Temperature changes in nickel-chromium intracranial depth electrodes during MR scanning. , 1993, AJNR. American journal of neuroradiology.
[48] C. Wilson,et al. Imaging of MR-compatible intracerebral depth electrodes. , 1990, AJNR. American journal of neuroradiology.
[49] Frank Bihari,et al. MRI compatible EEG electrode system for routine use in the epilepsy monitoring unit and intensive care unit , 2004, Clinical Neurophysiology.
[50] Christoph M. Michel,et al. Simultaneous EEG–fMRI at ultra-high field: Artifact prevention and safety assessment , 2015, NeuroImage.
[51] K. Johnson. An Update. , 1984, Journal of food protection.
[52] H. Hricak,et al. The Effect of Magnetic Resonance Imagers on Implanted Neurostimulators , 1992, Pacing and clinical electrophysiology : PACE.
[53] Klaus Scheffler,et al. A 16‐channel dual‐row transmit array in combination with a 31‐element receive array for human brain imaging at 9.4 T , 2014, Magnetic resonance in medicine.
[54] Louis Lemieux,et al. Safety of localizing epilepsy monitoring intracranial electroencephalograph electrodes using MRI: Radiofrequency-induced heating , 2008, Journal of magnetic resonance imaging : JMRI.
[55] Ashley J. Welch,et al. Laser Irradiation of Tissue , 1985 .
[56] Helmut Laufs,et al. A personalized history of EEG–fMRI integration , 2012, NeuroImage.
[57] N. Mikuni,et al. Invasive Evaluations for Epilepsy Surgery: A Review of the Literature , 2016, Neurologia medico-chirurgica.
[58] John S. Thornton,et al. Feasibility of simultaneous intracranial EEG-fMRI in humans: A safety study , 2010, NeuroImage.
[59] Vikas Gulani,et al. Clinical applications of dual‐channel transmit MRI: A review , 2015, Journal of magnetic resonance imaging : JMRI.
[60] Patricia Figueiredo,et al. A study of the electro-haemodynamic coupling using simultaneously acquired intracranial EEG and fMRI data in humans , 2016, NeuroImage.
[61] Y. Lui,et al. Optimized, Minimal Specific Absorption Rate MRI for High-Resolution Imaging in Patients with Implanted Deep Brain Stimulation Electrodes , 2016, American Journal of Neuroradiology.
[62] L. Wald,et al. Parallel Transmit Technology for High Field MRI , 2009 .
[63] Bradley Goodyear,et al. Simultaneous EEG-fMRI in Human Epilepsy , 2008, Canadian Journal of Neurological Sciences / Journal Canadien des Sciences Neurologiques.
[64] Chen Qiang,et al. Numerical Calculation and Correlative Factors Analysis on Temperature Distribution of GIS Bus Bar Based on Coupled Multi-Physics Methodology Combined with Multiple Boundary Conditions , 2016 .
[65] F. Shellock,et al. MRI and implanted medical devices: basic interactions with an emphasis on heating , 2005, IEEE Transactions on Device and Materials Reliability.
[66] L. Lemieux,et al. Electrophysiological correlates of the BOLD signal for EEG‐informed fMRI , 2014, Human brain mapping.
[67] F G Shellock,et al. Metallic neurosurgical implants: Evaluation of magnetic field interactions, heating, and artifacts at 1.5‐Tesla , 2001, Journal of magnetic resonance imaging : JMRI.
[68] Robert Bartha,et al. MR compatibility of EEG scalp electrodes at 4 tesla , 2007, Journal of magnetic resonance imaging : JMRI.
[69] Giorgio Bonmassar,et al. Polymer thick film technology for improved simultaneous dEEG/MRI recording: Safety and MRI data quality , 2017, Magnetic resonance in medicine.
[70] W. Wells,et al. RF Heating of Gold Cup and Conductive Plastic Electrodes during Simultaneous EEG and MRI , 2017, The Neurodiagnostic journal.
[71] Article reviewed: Auditory processing across the sleep-wake cycle: simultaneous EEG and fMRI monitoring in humans. , 2001, Sleep medicine.
[72] J. Affeldt,et al. The feasibility study , 2019, The Information System Consultant’s Handbook.
[73] Kawin Setsompop,et al. Ultra-fast MRI of the human brain with simultaneous multi-slice imaging. , 2013, Journal of magnetic resonance.
[74] Dean J Krusienski,et al. Empirical models of scalp-EEG responses using non-concurrent intracranial responses. , 2014, Journal of neural engineering.
[75] Benedikt A Poser,et al. High‐resolution gradient‐recalled echo imaging at 9.4T using 16‐channel parallel transmit simultaneous multislice spokes excitations with slice‐by‐slice flip angle homogenization , 2016, Magnetic resonance in medicine.
[76] Felix Breuer,et al. Simultaneous multislice (SMS) imaging techniques , 2015, Magnetic resonance in medicine.
[77] A. Elster,et al. Gradient-echo MR imaging: techniques and acronyms. , 1993, Radiology.
[78] Rainer Goebel,et al. A Specialized Multi-Transmit Head Coil for High Resolution fMRI of the Human Visual Cortex at 7T , 2016, PloS one.
[79] Georg Neubauer,et al. Temperature measurement on neurological pulse generators during MR scans , 2002, Biomedical engineering online.
[80] L. Lemieux,et al. Recording of EEG during fMRI experiments: Patient safety , 1997, Magnetic resonance in medicine.
[81] D. Larkman,et al. Use of multicoil arrays for separation of signal from multiple slices simultaneously excited , 2001, Journal of magnetic resonance imaging : JMRI.
[82] Matt A. Bernstein,et al. Measurements of RF heating during 3.0-T MRI of a pig implanted with deep brain stimulator. , 2013, Magnetic resonance imaging.
[83] T Landis,et al. Non-invasive epileptic focus localization using EEG-triggered functional MRI and electromagnetic tomography. , 1998, Electroencephalography and clinical neurophysiology.
[84] J D Bourland,et al. Review of Patient Safety in Time‐Varying Gradient Fields , 2000, Journal of magnetic resonance imaging : JMRI.
[85] Yudong Zhu,et al. Parallel excitation with an array of transmit coils , 2004, Magnetic resonance in medicine.
[86] Reza Atefi,et al. An Electrocorticography Grid with Conductive Nanoparticles in a Polymer Thick Film on an Organic Substrate Improves CT and MR Imaging. , 2016, Radiology.
[87] Giorgio Bonmassar,et al. EEG/(f)MRI measurements at 7 Tesla using a new EEG cap (“InkCap”) , 2006, NeuroImage.
[88] Walter Kucharczyk,et al. 3-Tesla MRI in patients with fully implanted deep brain stimulation devices: a preliminary study in 10 patients. , 2017, Journal of neurosurgery.
[89] U. Katscher. Basic and Tailored RF Shimming in a Multi-transmit Whole Body MR System , 2008 .
[90] T. W. Athey,et al. Heating Near Implanted Medical Devices by the MRI RF-magnetic Field , 1999, IEEE International Magnetics Conference.
[91] S. Al-Benna,et al. Burns from ECG leads in an MRI scanner: Case series and discussion of mechanisms. , 2014, Annals of burns and fire disasters.
[92] Giorgi Bit-Babik,et al. Computational Electromagnetic Analysis in a Human Head Model with EEG Electrodes and Leads Exposed to RF-Field Sources at 915 MHz and 1748 MHz , 2010, Radiation research.
[93] Wendy M Fallis,et al. Temperature measurements. , 2003, Anesthesia and analgesia.
[94] Giorgio Bonmassar,et al. On the effect of resistive EEG electrodes and leads during 7 T MRI: simulation and temperature measurement studies. , 2006, Magnetic resonance imaging.
[95] Arno Villringer,et al. Principles of multimodal functional imaging and data integration , 2009 .
[96] Athey Tw. A model of the temperature rise in the head due to magnetic resonance imaging procedures. , 1989 .
[97] Frank G Shellock,et al. Comments on MR heating tests of critical implants , 2007, Journal of magnetic resonance imaging : JMRI.
[98] A. R.,et al. Review of literature , 1951, American Potato Journal.
[99] M Seeck,et al. Functional MRI with simultaneous EEG recording: Feasibility and application to motor and visual activation , 2001, Journal of magnetic resonance imaging : JMRI.
[100] K. Jokela,et al. ICNIRP Guidelines GUIDELINES FOR LIMITING EXPOSURE TO TIME-VARYING , 1998 .
[101] J. R. Baker,et al. Simultaneous functional magnetic resonance imaging and electrophysiological recording , 1995 .
[102] Giorgio Bonmassar,et al. Improved subject's safety in simultaneous EEG and fMRI recordings using solid state switching devices on the electrodes , 1999, Proceedings of the First Joint BMES/EMBS Conference. 1999 IEEE Engineering in Medicine and Biology 21st Annual Conference and the 1999 Annual Fall Meeting of the Biomedical Engineering Society (Cat. N.
[103] Niels Kuster,et al. Evaluation of the RF heating of a generic deep brain stimulator exposed in 1.5 T magnetic resonance scanners , 2013, Bioelectromagnetics.
[104] F. Shellock,et al. Effects of coil dimensions and field polarization on RF heating inside a head phantom. , 2005, Magnetic resonance imaging.
[105] J. Belliveau,et al. Metallic electrodes and leads in simultaneous EEG‐MRI: Specific absorption rate (SAR) simulation studies , 2004, Bioelectromagnetics.
[106] Giorgio Bonmassar,et al. Analysis of the Role of Lead Resistivity in Specific Absorption Rate for Deep Brain Stimulator Leads at 3T MRI , 2010, IEEE Transactions on Medical Imaging.
[107] B. Condon,et al. Thermal injuries associated with MRI. , 2001, Clinical radiology.
[108] Steve Iskra,et al. EEG Electrode Caps Can Reduce SAR Induced in the Head by GSM900 Mobile Phones , 2007, IEEE Transactions on Biomedical Engineering.
[109] Giorgio Bonmassar,et al. A Novel Brain Stimulation Technology Provides Compatibility with MRI , 2015, Scientific Reports.
[110] Jorge Jovicich,et al. Length matters: Improved high field EEG–fMRI recordings using shorter EEG cables , 2016, Journal of Neuroscience Methods.
[111] R. Lufkin,et al. MR imaging with topographic EEG electrodes in place. , 1988, AJNR. American journal of neuroradiology.
[112] Emmanuel Perrin,et al. A phantom and animal study of temperature changes during fMRI with intracerebral depth electrodes , 2014, Epilepsy Research.
[113] Kawin Setsompop,et al. Simultaneous multislice excitation by parallel transmission , 2014, Magnetic resonance in medicine.
[114] John S. Thornton,et al. Simultaneous intracranial EEG–fMRI in humans: Protocol considerations and data quality , 2012, NeuroImage.
[115] Robert C. Wolpert,et al. A Review of the , 1985 .
[116] J. Daunizeau,et al. The combination of EEG Source Imaging and EEG‐correlated functional MRI to map epileptic networks , 2010, Epilepsia.
[117] Jean A. Tkach,et al. Reduction of Magnetic Resonance Imaging-related Heating in Deep Brain Stimulation Leads Using a Lead Management Device , 2005, Neurosurgery.
[118] D. B. Gurung,et al. Human males and females body thermoregulation: perfusion effect analysis. , 2014, Journal of thermal biology.
[119] V. Tronnier,et al. Active deep brain stimulation during MRI: A feasibility study , 2004, Magnetic resonance in medicine.
[120] J. Armony,et al. Auditory Processing across the Sleep-Wake Cycle Simultaneous EEG and fMRI Monitoring in Humans , 2000, Neuron.
[121] E. McVeigh,et al. Minimizing RF heating of conducting wires in MRI , 2007, Magnetic resonance in medicine.
[122] D. B. Gurung,et al. Effect of Blood Perfusion and Metabolism in Temperature Distribution in Human , 2013 .
[123] Stephen E. Jones,et al. Safety of externally stimulated intracranial electrodes during functional MRI at 1.5T. , 2017, Magnetic resonance imaging.
[124] Aviva Abosch,et al. Effect of the extracranial deep brain stimulation lead on radiofrequency heating at 9.4 Tesla (400.2 MHz) , 2010, Journal of magnetic resonance imaging : JMRI.
[125] Shantanu Sinha,et al. Bilateral neurostimulation systems used for deep brain stimulation: in vitro study of MRI-related heating at 1.5 T and implications for clinical imaging of the brain. , 2005, Magnetic resonance imaging.
[126] G. Calcagnini,et al. MRI induced heating of pacemaker leads: effect of temperature probe positioning and pacemaker placement on lead tip heating and local SAR , 2006, 2006 International Conference of the IEEE Engineering in Medicine and Biology Society.
[127] K. R. Foster,et al. Healthand Safety Implicationsof Exposureto Electromagnetic Fieldsin the Frequency Range 300 Hzto10 MHz , 2002 .
[128] C. V. Van Way. Patient safety. , 2005, JPEN. Journal of parenteral and enteral nutrition.
[129] Ashwini Sharan,et al. Neurostimulation systems for deep brain stimulation: In vitro evaluation of magnetic resonance imaging–related heating at 1.5 tesla , 2002, Journal of magnetic resonance imaging : JMRI.
[130] Marco Leite,et al. Phase–amplitude coupling and the BOLD signal: A simultaneous intracranial EEG (icEEG) - fMRI study in humans performing a finger-tapping task , 2017, NeuroImage.